• Title/Summary/Keyword: 웨이블릿 변환 분석

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Color-Texture Image Watermarking Algorithm Based on Texture Analysis (텍스처 분석 기반 칼라 텍스처 이미지 워터마킹 알고리즘)

  • Kang, Myeongsu;Nguyen, Truc Kim Thi;Nguyen, Dinh Van;Kim, Cheol-Hong;Kim, Jong-Myon
    • Journal of the Korea Society of Computer and Information
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    • v.18 no.4
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    • pp.35-43
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    • 2013
  • As texture images have become prevalent throughout a variety of industrial applications, copyright protection of these images has become important issues. For this reason, this paper proposes a color-texture image watermarking algorithm utilizing texture properties inherent in the image. The proposed algorithm selects suitable blocks to embed a watermark using the energy and homogeneity properties of the grey level co-occurrence matrices as inputs for the fuzzy c-means clustering algorithm. To embed the watermark, we first perform a discrete wavelet transform (DWT) on the selected blocks and choose one of DWT subbands. Then, we embed the watermark into discrete cosine transformed blocks with a gain factor. In this study, we also explore the effects of the DWT subbands and gain factors with respect to the imperceptibility and robustness against various watermarking attacks. Experimental results show that the proposed algorithm achieves higher peak signal-to-noise ratio values (47.66 dB to 48.04 dB) and lower M-SVD values (8.84 to 15.6) when we embedded a watermark into the HH band with a gain factor of 42, which means the proposed algorithm is good enough in terms of imperceptibility. In addition, the proposed algorithm guarantees robustness against various image processing attacks, such as noise addition, filtering, cropping, and JPEG compression yielding higher normalized correlation values (0.7193 to 1).

Fish's Activity Analysis through Frequency Analysis of Angle Information (움직임 각도의 주파수 분석을 통한 활동성 분석)

  • Kim, Cheol-Ki
    • The Journal of the Korea Contents Association
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    • v.7 no.5
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    • pp.10-15
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    • 2007
  • This paper proposes the method that detects abnormal trajectory of fish with tracking data. And it is obtained by automatic tracking system based on conventional computer vision. Also, we analyze the trajectory using subband frequency features through DWT(Discrete Wavelet Transform). Through experimental results, we confirm that our results have some statistical means. The proposed method demonstrates that DWT is useful method for detecting presence of toxicoid features in environment as for an alternative of bio-monitoring tool.

Analysis of EEG Signal Evoked by Auditory Stimulation (청각 자극에 의해 유발되는 뇌파신호의 분석)

  • Lee, Dong-Han;Kim, Jae-Wook;Lee, Chong-Ho
    • Proceedings of the KIEE Conference
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    • 2000.07d
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    • pp.3227-3229
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    • 2000
  • 본 논문은 청각 자극이 제시되었을 때 변화되는 뇌파로부터 의미 있는 특징을 찾아내서 정량화 할 수 있는 변수 추출 및 분류 기법을 제시한다. 건강한 피실험자로부터 방향성 있는 청각 자극을 인가했을 때의 뇌파를 검출, 분류하였다. 뇌파의 변수 추출 방법으로는 짧은 시간영역에서의 신호의 갑작스런 변화량도 정량적으로 분석할 수 있는 Mallat's A1gorithm을 이용한 웨이블릿 변환(wavelet transform)을 적용하였고, 분류 방법으로는 그 결과로 나온 웨이블릿 계수를 변수로 하여 Neural Network을 학습하여 사용하였다. 향후 피실험자의 훈련을 통해서 청각 자극이 없이 순수한 생각만으로 방향을 검출할 수 있는 뇌파분석기를 만든다면 생각만으로도 물체의 방향을 제어할 수 있을 것이다.

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Adaptive Deringing filter's Design and Performance Analysis on Edge Region Classification (윤곽 영역 분류에 기반한 적응형 디링잉 필터의 설계 및 성능 분석)

  • Cho Young;Park Chang-Han;Namkung Jae-Chan
    • Journal of Korea Multimedia Society
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    • v.7 no.10
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    • pp.1378-1388
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    • 2004
  • This paper proposes method to improve the image quality degradation that show when reconstructing compressed images at low bit rate by using wavelet transform. The image quality distortion is blocking artifacts and noise in DCT's compression but blocking artifacts of wavelet transform does not appear and ringing artifacts was appeared near the edge. This proposed technique is classified to part which is ringing artifacts of the edge vicinity appears which is not, apply adaptive filter to each region improved image. A edge region which is harsh to the eye is applied by Canny mask and finding strong edge region, search the neighborhood classify the flat region and the texture region, and apply to each region suitable filter, As experiment result, PSNR value of method that is proposed in that low bit rate compression image that ringing artifact appears became low about 0.05db, but 0.023db degree rose strong edge region and nat region's image. Also, showed picture quality improved more than ringing artifacts in nat region when see from subjective viewpoint of human.

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The Conditions and Segmentation of Road Surface (도로표면 상태 및 분류)

  • Han, Tae-Hwan;Ryu, Seung-Ki
    • Proceedings of the Korean Institute of IIIuminating and Electrical Installation Engineers Conference
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    • 2008.05a
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    • pp.263-266
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    • 2008
  • 입력신호인 도로표면의 화상 데이터는 낮 시간대의 아스팔트 포장 도로면을 촬영하여 도로표면 상태의 화상을 만들었고, 편광 및 웨이블릿 변화(Wavelet transform)으로 도로 표면을 5가지의 상태(건조, 습윤, 수막, 적설, 동결)로 인식할 수 있는 분류기준절차를 연구하였다. 표면 화상 인식 과정은 편광계수에 의한 젖은 땅으로 분류한 후, 다음으로 젖은 땅을 제외한 나머지는 웨이블릿 패킷 변환을 통해 시간-주파수 분석을 하였다. 또한 영상 템플릿을 이용하여 마른 땅과 빙판의 표준적인 주파수 특성을 분석하여, 마른 땅과 빙판을 구분하였다. 도로표면영상에서 마른 부분과 젖은 부분을 구분한 결과를 정리하였다.

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A New Watermarking Algorithm for Copyright Protection of Stereoscopic Image (스테레오 영상의 소유권 보호를 위한 워터마킹 기법)

  • Seo, Young-Ho;Koo, Ja-Myung;Kim, Dong-Wook
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.16 no.8
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    • pp.1663-1674
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    • 2012
  • In this paper, we propose a new watermarking technique for copyright protection of stereo image. The proposed technique embeds watermark to the region which corresponds to occlusion of the disparity map to be extracted by the proposed stereo matching and the frequency coefficient with the appropriate value. We use discrete wavelet transform for frequency transform tool. The proposed algorithm consists of stereo matching, watermark rearrange, mark space selection, and watermark embedding/extracting. We tested the experiment about 4 stereo images which are from Middlebury site. We embedded the watermark to 4 stereo images and extracted it from the images after attacks. We also visually analyzed the watermark embedding images in 3D TV environment.

A Wavelet-based Profile Classification using Support Vector Machine (SVM을 이용한 웨이블릿 기반 프로파일 분류에 관한 연구)

  • Kim, Seong-Jun
    • Journal of the Korean Institute of Intelligent Systems
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    • v.18 no.5
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    • pp.718-723
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    • 2008
  • Bearing is one of the important mechanical elements used in various industrial equipments. Most of failures occurred during the equipment operation result from bearing defects and breakages. Therefore, monitoring of bearings is essential in preventing equipment breakdowns and reducing unexpected loss. The purpose of this paper is to present an online monitoring method to predict bearing states using vibration signals. Bearing vibrations, which are collected as a form of profile signal, are first analyzed by a discrete wavelet transform. Next, some statistical features are obtained from the resultant wavelet coefficients. In order to select significant ones among them, analysis of variance (ANOVA) is employed in this paper. Statistical features screened in this way are used as input variables to support vector machine (SVM). An hierarchical SVM tree is proposed for dealing with multi-class problems. The result of numerical experiments shows that the proposed SVM tree has a competent performance for classifying bearing fault states.

Robust Face Recognition Against Illumination Change Using Visible and Infrared Images (가시광선 영상과 적외선 영상의 융합을 이용한 조명변화에 강인한 얼굴 인식)

  • Kim, Sa-Mun;Lee, Dea-Jong;Song, Chang-Kyu;Chun, Myung-Geun
    • Journal of the Korean Institute of Intelligent Systems
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    • v.24 no.4
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    • pp.343-348
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    • 2014
  • Face recognition system has advanctage to automatically recognize a person without causing repulsion at deteciton process. However, the face recognition system has a drawback to show lower perfomance according to illumination variation unlike the other biometric systems using fingerprint and iris. Therefore, this paper proposed a robust face recogntion method against illumination varition by slective fusion technique using both visible and infrared faces based on fuzzy linear disciment analysis(fuzzy-LDA). In the first step, both the visible image and infrared image are divided into four bands using wavelet transform. In the second step, Euclidean distance is calculated at each subband. In the third step, recognition rate is determined at each subband using the Euclidean distance calculated in the second step. And then, weights are determined by considering the recognition rate of each band. Finally, a fusion face recognition is performed and robust recognition results are obtained.

The Recognition and Segmentation of the Road Surface State using Wavelet Image Processing (웨이블릿 영상처리에 의한 도로표면상태 인식 및 분류)

  • Han, Tae-Hwan;Ryu, Seung-Ki;Song, Wonseok;Lee, Seung-Rae
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.22 no.4
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    • pp.26-34
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    • 2008
  • This study focus on segmentation process that classifies road surfaces into 5 different categories, dry, wet water, icy, and snowy surfaces by analyzing asphalt-paved road images taken in daylight. By using the polarization coefficients, the proportions of horizontally polarized components to vertically polarized components, regions with over 1.3 polarization coefficients are classified as wet surfaces. Except for wet surfaces, the decision process a lies time-frequency analysis to other parts by using the third order wavelet packet transform. In addition, by using the average frequency characteristics of dry and icy surfaces from image templates, decide which is closer to a test image, and finally identify dry and icy surfaces. It is confirmed that the reposed estimation and segmentation of recognition on various images. This can be interpreted as an indication that image-only mad surface condition supervision is probable.

Target Separation using Wavelet for Multiple Target Localization in Wireless Sensor Network (다중 표적 위치 추정을 위한 무선 센서 네트워크에서 웨이블릿을 이용한 표적 분리)

  • Cha, Dae-Hyun;Lee, Tae-Young;Hong, Jin-Keun;Han, Kun-Hui;Hwang, Chan-Sik
    • Proceedings of the KAIS Fall Conference
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    • 2009.12a
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    • pp.295-298
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    • 2009
  • 다중 표적을 감시하는 무선 센서 네트워크에서 다중 표적이 서로 교차하게 될 때 각각의 표적을 분리하는 문제는 표적의 추적, 탐지, 식별 등의 분야에서 매우 중요하다. 기존의 무선 센서 네트워크에서는 에너지 기반의 기법을 사용하기 때문에 다중 표적의 위치를 추정할 수 없거나, 기지국에서의 원 신호 분석 방법을 통해 표적의 종류를 식별하여 각각의 표적을 분리한다. 후자의 방법은 무선 센서 노드의 통신량과 연산량을 증가시켜 센서 노드의 생존 시간이 짧아지는 단점이 있고, 표적 분리까지 걸리는 시간으로 인해 실시간 처리가 어렵다. 본 논문에서는 무선 센서 노드에서 웨이블릿 변환을 이용한 특징을 추출하고 이를 이용해 다중 표적이 센서 영역 내에서 교차하게 될 때 표적을 분리하는 방법을 제안한다. 제안된 방법은 웨이블릿 상수의 주파수 정보를 이용하여 적은 연산으로 표적을 분리한다.

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